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Showing posts with label space solar power. Show all posts
Showing posts with label space solar power. Show all posts

Monday, October 19, 2009

Potpourri CVIII

Heads up! The Ares I-X rocket is due to roll out to Launch Complex 39B tonight at 11:01 p.m. (Central Time), assuming the winds hold. If all goes well, the launch window will start at 8 a.m. October 27. Huzzah!

Also in NASA news, much to my surprise, the Augustine Human Space Flight Panel's final report will be made public October 21. We shall see what we shall see. This email (allegedly) from the Constellation Program manager is worth reading if you're wondering what the internal opinion of the Panel at NASA is like.

An article from The Space Review argues that we don't necessarily need a heavy-lift vehicle for exploration.

Here's something completely random from my buddy Gwen: a birthday calculator.

A good editorial from the Wall Street Journal on technologies that can change the future, among them space solar power.

A few links from Claire:
  • Want to know what the federal debt was on a particular date? Check this out.
  • Here's a GAO report on the outlook for future federal income (taxes) and outlays (spending).
  • And if you'd like to know the state of the federal debt right now, there's this site.

That's plenty to make you sweat, if long-term or even short-term economic issues concern you.

Tuesday, June 23, 2009

Energy and Its Opponents

NASA "scientist" (the quotes are on purpose--he shifted from serious scientist to advocate years ago) has been arrested along with actress Darryl Hannah and others for obstructing traffic in a protest against coal power. Hansen is upset about global warming and its potentiallly catastrophic effects on the planet (ignoring the catastrophic effects brought about by another Ice Age).

We need a little rationality on the energy debate, which we are unlikely to get, because the two "sides" of the issue are at serious cross-purposes:

  1. Global warming is happening! It's serious, deadly, and we need to act NOW to prevent an even greater catastrophe!
  2. Climates are changing all the time via "weather." Why don't we collect more data before we make a bad decision that does more harm than good?
Then there's the fact that global climate change advocates' solutions for the problem lead inevitably to a contracting of the Western way of life. Consider their treatment of the primary forms of energy used today:

  1. Petroleum: A finite resource that is the primary creator of pollution and global warming.
  2. Nuclear: Too dangerous due to potential meltdowns (even though Three Mile Island, the worst nuclear power accident in American history, never hurt a single human being).
  3. Coal: It's "dirty," and must be eliminated.
  4. Natural gas: A finite resource, essentially a form of petroleum, and so must be subject to restrictions or rationing.
  5. Hydroelectric: Dams can drown or destroy animal and plant habitats (human habitats are conveniently ignored).
  6. Ground-based solar: Ideal (even though it produces less than 1% of U.S. energy needs and is essentially useless on cloudy days, at night, and at higher latitudes with lower amounts of sunlight).
  7. Geothermal: Okay (but limited to places where geothermal vents are present).
  8. Wind: Ideal (even though the wind doesn't blow all the time, and if we want to keep our economy functioning at the current levels, we'd need hundreds of thousands of them--oh, and where are we going to get the energy and petrochemicals necessary to manufacture these windmills?).

These sources haven't been used yet, but protests can't be far away...

  1. Space-based solar power: No organized lobby against SBSP, though I can imagine it will be objected to on public safety and military grounds ("It could be used as a weapon to fry people!").
  2. Helium-3 fusion: Another energy source so far lacking an enemy. However, it is nuclear power (you know--like that sun that's providing solar power?), and so must be evil, even if it hasn't been accomplished yet.
  3. Tide and Ocean-thermal electric conversion (OTEC): Tidal energy hasn't gotten a lot of attention, but would probably get negative points for cluttering up rich people's beachfront property. OTEC would require very large, oil derrick-like structures over the deep places in the ocean. You run a cable down to the cold regions of the deep ocean, and the temperature difference creates a potential difference, and thus electrical current. No doubt these structures would be protested for being ugly in the middle of nowhere.

Anyhow, I can only assume that those who protest all useful energy production must have a death wish. The internet takes energy. Creating plastic computers (you know: Macs) requires energy and petrochemicals. Creating high-productivity fertilizers to improve crop productivity and feed the hungry millions of the world requires energy. Creating new pharmaceuticals to keep everyone healthy requires energy plus complex chemistry, often found in petrochemicals. CAT scans, MRIs, and other medical wonders require energy to operate and energy to manufacture. Coffee makers require energy to manufacture and operate. Even bicycles and basic garden tools require energy to be produced--energy often provided by hydrocarbons (aka petroleum). Trucks, trains, and aircraft require fuel to transport necessary goods to stores.

We cannot cut ALL of the high-density energy resources from our economy, or millions, nay, billions of human beings will starve for lack of food, transportation, and medicine. The upcoming "cap and trade" legislation is simply a tax on energy, and it will hurt everybody in the name of a cause that has yet to close its scientific case. When are we going to say "Enough!"?

Tuesday, April 14, 2009

Potpourri XIX

Jeez, I spend one day away from the blog, and I'm flooded with interesting stuff! That'll teach me. I do have a lot of stuff to post this evening, but before I get into the usual space and smashmouth, you've got to go see this lady sing on YouTube. If only "American Idol" was this classy, I might watch it once. Okay, back to the usual foolishness...

An article in The Atlantic on education, and Jerry Pournelle's comments afterward.

Congratulations due to Your Humble Narrator: There have been several stories on this. According to the Department of Homeland Security, I am now considered a likely right-wing nut-job terrorist. Okay, not me specifically, but apparently people like me or vaguely like me. Here is the specific footnote from Rightwing Extremism: Current Economic and Political Climate Fueling Resurgence in Radicalization and Recruitment:

Rightwing extremism in the United States can be broadly divided into those groups, movements, and adherents that are primarily hate-oriented (based on hatred of particular religious, racial or ethnic groups--not me, wait for it), and those that are mainly antigovernment, rejecting federal authority in favor of state or local authority (this would be me, on several issues), or rejecting government authority entirely. It may include groups and individuals that are dedicated to a single issue, such as opposition to abortion or immigration.

What should have been said is "those that are violently antigovernment, rejecting federal authority..." etc. And there's this problem: there are millions of Americans who believe that the federal government has exceeded its authority as stated in the Constitution:

Amendment X
The powers not delegated to the United States by the Constitution, nor prohibited by it to the states, are reserved to the states respectively, or to the people.

I don't hoard guns, wear a sheet, hate immigrants, bomb abortion clinics, or use vile words to describe our President. Nevertheless, that is how people who think like me are being portrayed by this innocuous footnote. It's disgusting and rude and paints with too broad a brush. I've got friends I disagree with on a multitude of issues, covering all the items listed above, but I don't consider them candidates to become left-wing terrorists. I hope someone in DHS takes the time to scrub their verbiage next time they write one of these reports.

Saw this link from one of the folks on Facebook: a seminar on open collaboration in government.

NASA is offering the opportunity for people to vote on the agency's greatest contributions to the environment.

Thanks to Doc and another reader for pointing out that there are free books out there for Kindle buyers. I "bought" Red Mars for $0.00 yesterday. Woo hoo!

I'm getting some requests to do more pro bono work for the Mars Foundation's Mars Education Center. I haven't said yes to all of the requests, but some of the smaller jobs. If you're interested in a Mars-themed educational experience, this is a project worth pursuing.

Darlene the Science Cheerleader has referenced a link to policy fellowships for scientists and engineers.

Some rich guys in Hong Kong have built Noah's Ark according to the specifications noted in Genesis Chapter 6.

California's largest utility has made a deal to purchase electrical power from a company promising to build a solar power satellite.

Fedora tip to Tracy for these:

  • A decent article on Hubble.
  • A book on "Generation Me," explaining what's afflicting Generation Y.
  • An editorial by Seth Shostak on the realistic chances for deep space exploration. This one will not make my space settlement buddies happy, but it deserves to be considered.

NASA is supposed to send astronaut Suni Williams onto The Colbert Report to announce the name of the so-far-unnamed new node of the International Space Station. Finally. Put this foolishness to rest. I'm bored by it. I have a feeling this won't be the end of the matter, regardless of what decision is made.

Mike Griffin is taking an "eminent scholar" position at the Unviersity of Alabama in Huntsville. Maybe now I can get a copy of his book signed. It's actually a pretty useful book.

Hat-tip to Hu for these: some more speculation on what the latest DoD budget will mean for our military. Also here, here, here, and here.

And another from Hu, this one on robotics: MIT students develop a robot capable of caring for tomato plants.

And, to close this edition of potpourri, a little guerrilla theater, Sound of Music style. Tip o' the fedora to Father Dan for this. Have a splendid evening!

Friday, February 27, 2009

Some Other Space Items

Hat tip to Martin for finding this Washington Post survey on the usefulness of spending on NASA: http://www.dailytech.com/Survey+9+Out+of+10+Americans+Think+Space+Exploration+Still+Important/article14413.htm

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I got into an interesting discussion with Tom Olson, an expert on space entrepreneurship and one of the contributors to Space Cynics. First, you can read his original post: http://spacecynic.wordpress.com/2009/02/23/i-am-a-lost-cause/

Not able to leave this alone, I felt that I must respond:

You’ve got excellent reasons for being a “lost cause” on all of the topics you mentioned. However, since you’re not a Kool-Aid drinker for SBSP, low-cost launch, He-3, etc., what does interest you in space still? What do you think will work, given all the aborted or downright silly ideas?
I’ve seen a few posts like this, here and on N’Watch, bashing this or that dumb idea, but often find few positive recommendations. Are those found on a different blog?
/b

To which Mr. Olson responded:

I’m interested in all of space, Bart. Have been since I was a kid. I want to see people live and thrive everywhere from the moon and Mars to the asteroids and beyond. I want to see tourism and orbiting hotels. I want to see the private commercial space sector one day dwarf the government sector, as is the case with all other areas of our economy. (Well, up until recently. --BL)
My problem is the nutty ways that people propose to achieve that goal - ways that are impractical, full of “unobtainium”, have 8 or 9-figure upfront costs, or ways that hide their true costs (this is also known as being untruthful).
So the real question becomes, “How do we get from here to there?” I have a few ideas - I’ve even shared them for those who’ve cared to listen (that would include ISDC last year, Bart, and I didn’t see you in the audience - pity, that…). (He's right. My bad. I was elsewhere when his talk was going on because I got rerouted to another room.)
I think in the short run, strategic investments in “enabling” technologies will get us much farther in the long run than trying to throw down everything into grabbing the entire brass ring in one swoop. For example, I believe that lower-cost launch is possible - but not using the materials we presently use to make rockets - but getting that material requires new methods, hence my focus on certain nanotech startups. But that means to get there we may have to wait awhile, and that is unacceptable to those with limited patience who think they can get it all now, if only they can convince someone with a really deep pocket to fund them.
To be fair, I’m very supportive of SpaceX, because they’re doing it all with private money, and had to raise all their own capital before getting a single NASA check. But Elon himself admitted that the only “efficiencies” would be “at the margins”. In other words, no huge reduction in launch cost was coming anytime soon. That’s the world that exists today. But if you could “grow” the bulk of your rocket components in a vat from nano-assembled diamond, the rocket equation changes because the empty lift mass is a lot lower, but still as strong. That means more payload.
I’m looking at “smart materials” that may one day find themselves in better spacesuits. I’m looking at something called an “axial-flux” electric motor that claims 80% efficiency, available for transportation, regenerative braking, and wind generation, something I also see on a Mars rover.
There’s a ton of ideas being developed, and tons of potential money to be made, right now, on materials, products, and services that may seem unrelated at first, but will all one day become key components of a thriving space-commerce infrastructure.
But it’ll take patience, a long term plan, and a solid grounding in reality.

I like the cynics. They make me think. I reacted to one of their more provocative discussions soon after ISDC, which took on "The Church of the Trillion-Dollar Asteroid," "The Church of Cheap Access to Space," "The Church of Space Solar Power," and "The Church of Spaceports." The point of picking on all these groups was to bring a little financial realism to the wild dreams of space advocates. Of course the problem with all this thinking is that I've found myself wondering, as a non-engineer, non-scientist English major, who is right? What path will really get us to space?

Anyone who wants to become a space advocate, as I obviously do, must set themselves on a quest for lifelong learning. And I've got to state here that I don't want to do all the math. I'm an advocacy writer, I'm not paid to do rocket science; but I want to have a layman's understanding of the various technologies. I want to know that I'm supporting the right things for the right reasons. Never mind. I've got more reading to do.

Thursday, January 01, 2009




Book Review: A Step Farther Out

I thought I'd get in one more book review for '08 before returning to my European trip planning and language learning. In this case, I decided to pick up a book that I thought might restore my faith in the future possibilities of technology (it's been a little disheartening lately, believe it or not). The book I selected to reread is A Step Farther Out by science, technology, political, and science fiction writer Jerry Pournelle.

Pournelle has had a profound influence on my outlook for the future, and on my beliefs in the benefits to be derived from a spacefaring civilization. He is in the category of "seriously smart" people who often inhabit the halls of NASA (he worked on human factors, among other things, during the Apollo program), having degrees in psychology, political science, and engineering. Thus, he is proudly of the sort who does not suffer fools gladly. You can look up his entry on Wikipedia, or visit his web site, which is a permanent link on this site.

Now, to A Step Farther Out. Written in the late '70s and compiled from a variety of columns written in the mid-'70s, the book addresses some of the wilder scientific and technological speculations that might make "survival with style" in the future possible. These include nuclear power (fission and fusion), space solar power, asteroid mining, ocean thermal conversion (OTEC), magnetohydrodynamic power, and the like.

Survival with style means that all human beings will not eventually slog downhill toward a future that is "solitary, poor, nasty, brutish, and short," but one where everyone at least has access to the benefits of the advanced society and conveniences we enjoy today. To overcome the problems of declining resources on one world, according to the Pournelle doctrine, we must tap into the material and energy resources of space. For further improvement of life on Earth, he even suggests exporting our more polluting enterprises--particularly metal production--into space, turning Earth into a great parkland. And Pournelle points out that the best way to reduce worldwide population is to make everyone rich (note where the highest declines in birth rate are). And according to Pournelle, the best way to make everyone rich is to make the goods of civilization, both physical and intellectual, so common as to be easily affordable by all: the simple law of supply and demand.

The alternatives to this high-technology, advanced society, Pournelle warns, are not pretty, and pretty much end up with the West becoming poor through increased taxation and regulation in an attempt to redistribute wealth to the Third World, or the West becoming a walled enclave that is eventually overrun by its poorer, hungrier, and less educated neighbors--one can already see signs of this today, 30 years after A Step Farther Out was written. The alternatives Pournelle was discussing were all feasible with the technologies we had 30 years ago. And perhaps that's the most infuriating part--we haven't done most of what he was discussing! So now we face yet another energy crisis, another surge of collectivism, an embattled space program, and even greater pressures on the world's resources, and yet little to nothing has been done about promoting the grand future Pournelle proposed.

Now Pournelle makes it quite clear that he is not for polluting the Earth--indeed, the notion of exporting all the pollution off the planet has a mighty utopian ring to it--but he also does not suffer environmentalists, collectivists, Marxists, "Club of Rome" enthusiasts, or anti-technology advocates without a certain amount of disdain. In the 30 years since A Step was written, an entire generation, including my own, got raised on environmentalism of a particular flavor, and so his condescension probably won't sell well without a lot of arguments. That said, high technology has advanced considerably since 1979. For instance, Moore's Law, which did and still does show computers doubling capacity every two years, has led to a drastic improvement in computing ability. The 8088 chip of 1980, for instance, had around 50,000 transistors on it; today, the top-of-the-line chips have two billion transistors. We have had a 25-year expansion in the U.S. economy and standard of living that is unprecedented in world history. That same generation that was raised on environmentalism was also raised in a world where space travel was commonplace (yea, nearly boring!), along with ever-improving computers, telephones, personal data assistants, and ever-new high-tech gadgets; so Pournelle's message isn't impossible to sell today.

The biggest blocks to A Step Farther Out today are the same as they were 30 years ago--they're political, not technical. With Republicans (if not old-style conservatism) out of favor, Pournelle is often ignored. The economy is experiencing a recession, so far only two or three quarters long--therefore, capitalism must be broken! Republicans who campaigned as conservatives in the '90s spent like liberals in the '00s--therefore, conservatism must be broken! The U.S. military is stronger and more expensive than the next 30 nations' armed forces combined, but we've lost just over 4,000 men in six years in Iraq and Afghanistan, 1 percent of our losses in our four years of fighting World War Two--therefore, the military must be evil and broken! Western Civilization did horrible things in its imperial past while the former colonies are still poor--therefore, Western Civ is evil and out of favor and broken! Now, I happen to believe none of this, but the statements I just wrote are running loose through the media and the culture right now, and they are some of the reasons that a pro-technology, pro-defense, pro-capitalism, pro-Western civilization, pro-conservative message might have a hard time getting through to the general population.

Nevertheless, Pournelle offers convincing arguments. It might not hurt for my out-of-favor conservative friends to give A Step Farther Out another look. It might return them to their principles and give them a better vision for the future.

Wednesday, November 26, 2008

Sorting Out Engineering Reality

A recurring problem I have in my line of work is judging what’s “true” and what’s not. It’s not so much that I think people are lying to me about what’s going on in the space business, it’s just that I was too lazy in junior high, high school, and college to get myself a serious education in science, technology, engineering, and mathematics (STEM). This is a problem for me and, I fear, for many more Americans, as more and more of our nation’s future choices will be STEM-based. This is part of the reason I’m such a fan of
Darlene the Science Cheerleader: she’s a strong advocate for science education among the non-scientific masses, and gosh knows we all need it.

Now mind you, the space business has, as one of my previous employers put it, “plenty of engineers; what we need is a writer.” So that’s been my role: technical writer. I translate Engineerish into English. I’m able to do this without understanding the work 100% because I understand how words work. They aren’t paying me to understand it all. I do my level best, of course, to educate myself so that I do understand it. And I understand enough about political philosophy and policy to be an advocate.

Sometimes, however, it’s difficult to know which technologies, among the many I’ve supported over the past 8 years, stands a solid chance of succeeding. That leaves me the option of taking things on faith or getting myself a better education. The following narrative, then, is a review of the hot technologies space advocates support, how they’re supposed/claimed to work, and what the objections to them are. I can explain them clearly, as you’ll see, but I can’t for the life of me sort out all this.

Space Solar Power (SSP) / Solar Power Satellites (SPS) / Space-Based Solar Power (SBSP)
How It’s Supposed to Work
A solar power satellite is a large array of solar cells—say, a mile across—placed in orbit. Because it is above the atmosphere and in the sunlight for longer periods of time, the theory is that the SPS would collect more solar energy than ground-based solar. The energy collected from these solar cells would then be transmitted, projected, or beamed down (pick your verb) to a rectifying antenna (
rectenna) on the ground. The power would then go out from the rectenna to a nearby electrical grid. The potential output of such a system would be in the 1-10 gigawatt range.

The Arguments Against It

  • It’s too expensive to get the hardware into orbit.
  • Even if you could bring down launch costs, the operating costs would still not make SSP commercially competitive with any ground-based energy source, including ground-based solar.
  • Even if you could get the hardware up there cheaply and get it to provide power competitively, any usefully scaled SPS is too big to fit on any known launcher (except, maybe, Ares V).
  • Even if you could get the hardware up there cheaply and on a properly sized rocket, it wouldn’t work for the following reasons:
    --Beam attenuation; i.e., the microwave or laser transmitting power to the ground rectenna would lose too much energy to be worthwhile.
    --The SPS would be so big and so lightweight that solar radiation pressure alone would cause it to keep drifting along its orbit. This is how one powers solar sails, which are meant to travel.
    --
    Even if you could get the hardware to work, it would never be accepted by the public because:
    o Environmental activists would go bonkers protesting it because it uses radiation as its primary output (even if that same radiation is also used to power ground-based solar cells).
    o Government environmental regulations would stifle the technology somehow, with or without encouragement from the environmental lobby.
    o “Someone could use it as a weapon.” (See the James Bond flick “
    Goldeneye” for a sample of what that might look like.)
    o It wouldn’t provide much more energy than ground-based solar power.

Fine. I would submit a bit of my own hardheaded criticism, if I may: All of these objections come before anyone has even tried to build, field, and test a single SPS. We should at least try the bloody thing before trashing it or dismissing it out of hand. The cynics and skeptics might be right, but I’d feel more confident of their verdict if they had hard data to back up their assertions.

Reusable Launch Vehicles (RLVs) / Single Stage To Orbit (SSTO) / Two Stage To Orbit (TSTO)
How It’s Supposed to Work
A Reusable Launch Vehicle (RLV) is just what it sounds like: a rocket for getting to space that you can fly more than once. An RLV is supposed to be completely reusable, operating like an aircraft. No stages are dropped into the ocean, the vehicle flies multiple times, and costs are thereby reduced through mass production and repeat flight cycles.
The Arguments Against It
NASA has spent a great deal of time and money trying to develop precursor technologies or actual RLVs for the last 20 years or so. The Space Shuttle system, designed in the early 1970s, is partially reusable. Its solid rocket boosters return to Earth by parachute and splash down into the ocean. The orbiter, which houses the crew and cargo, lifts off like a rocket, its fuel tank is discarded and dropped into the Indian Ocean, and the orbiter then completes its mission, reenters the Earth’s atmosphere, and comes in to land like a glider. The orbiter is then refurbished and refitted for another mission.

The failed or incomplete RLV or partial RLV programs include the
National AeroSpace Plane (NASP), Space Launch Initiative (SLI), Orbital Space Plane (OSP), DC-XA, X-33/VentureStar, and X-34. For want of budgetary support or technological feasibility or both, NASA has not been able to do it. Does that mean RLVs are impossible? No, but they are really damned difficult, and the work has been attempted by some very bright people, both inside and outside the world’s premier space agency. Jerry Pournelle is more optimistic on this score than I am. He believes that the problem with RLV/SSTO has not been the technology so much as the organizations running the programs. He believes if the old NACA “X program” model is followed, then technology development could happen—not immediately, and not with billions and billions of dollars spread around a number of big contractors and important states—but with single contractors, small budgets, shorter timeframes, and more humble goals. Unfortunately, I don’t think our government is up for small and humble anymore.

Space Elevators
How It’s Supposed to Work
A
space elevator (also called an “orbital tower” or “skyhook”) is a structure that stretches from a point on Earth all the way out to geosynchronous orbit. The centrifugal force of the Earth’s rotation counteracts the elevator’s tendency to fall, so the tower stands straight out from the planet like a giant radio tower. The structure becomes an “elevator” when you attach climber vehicles capable of transporting people or cargo up and down the tower’s surface—the most common imagined climber would be a maglev (magnetic levitation) train. The maglev climber would require only electrical power to move, and would not produce sonic booms or require explosive chemicals, as rockets do.
The Arguments Against It
The structural materials strong enough to build a self-supporting elevator were only theoretical until the late 20th century. Then companies began experimenting with artificial diamonds, carbon “whiskers,” and now carbon nanotubes. Unfortunately, no one has made enough carbon nanotubes (which are molecule-sized) to build load-bearing structures. At present, they’re simply too expensive to mass produce.

Another interesting argument I’ve heard is that the elevator would act as a massive short circuit for the entire planet’s ionosphere, which would essentially fry, melt, or disintegrate the tower. The argument here is that the large amount of charged particles in the Van Allen Belts would follow the elevator all the way down to the Earth, becoming the world’s largest lightning rod.

The last argument against the elevator comes from my own experience
observing the Space Elevator Games in Las Cruces in 2006. These Games are sponsored by NASA as a means of generating competition to create technologies that could lead to a space elevator. Rather than a typical wound cable (the original concept for the elevator), these experimental crawlers all had to make their way up a six-inch-wide, 60-meter (~197 feet) tall industrial belt suspended from a crane. We were in the desert, mind you, so winds tend to be a little fickle, but the best guess was that winds were gusting to 10-15 miles per hour. Even in that slight breeze, the belt was whipping about in the wind like a crazed sail or weather flag in a full gale. Several teams had difficulty just attaching their crawler to the belt, much less getting their vehicle to climb the twisting belt. My verdict: even at great tension, atmospheric effects on the Earthbound side of the elevator would prevent any vehicle from traversing the distance safely, to say nothing of what sorts of oscillations might develop when moving through orbital space.

Asteroid Mining
How It’s Supposed to Work
Planetary science professor John S. Lewis makes a pretty compelling
case for mining the metals of nickel-iron asteroids to fulfill resource needs here on Earth or for building settlements in space. These asteroids include massive amounts of iron (obviously), platinum-group metals (useful for fuel cells), water and ammonia “volatiles,” and the equivalent of natural stainless steel.
The Arguments Against It
We’ve landed a couple of robotic spacecraft on asteroids. They weren’t designed for that, but the gravity on asteroids is so small (measured in thousandths of a gravity) that they could just about turn off their thrusters and drop onto them without a jar. That microgravity will be a problem for humans working there, of course, as we’re
learning from the International Space Station.

Next, we have never developed the technical tools for mining, extracting, and refining materials in micro- or zero gravity. (An obvious answer, of course, is “why don’t we?”) However, most mining and refining processes done here on Earth require high heat and gravity effects to separate different components from each other.

Finally, returning to Lewis’s book, he made a point that if all of the useful metals and other materials were mined from a single Amon-class asteroid and sold on Earth at current market prices, their value would be $20 trillion. It’s a great theory that ignores economic reality. Let’s say we found an asteroid that really did make platinum as common as sand on Miami Beach. Even if the platinum were put to work building catalysts for a worldwide fleet of
fuel cells, the price of the commodity would drop to about what you’d expect to pay for a handful of sand in Miami Beach. The materials of the Asteroid Belt may be abundant, but they’ll have to make people rich in space because they sure as heck won’t be on Earth.

Space Tourism / Personal Spaceflight
How It’s Supposed to Work
Civilian excursions into suborbital space by Virgin Galactic, Blue Origin, etc., could generate enough demand and traffic to produce mass-produced rockets, experience in operating RLVs (see above), and capital for a functioning space economy in orbit.
The Arguments Against It
Space tourism has been “just around the corner” since 2004, and it looks like it’ll be another year or two before Virgin Galactic is able to fly paying customers aboard their Burt Rutan-built Spaceship Twos. A lot of operations have folded since the X Prize was won. Others are working in secret. Many things can go wrong, and the American public is not quite as willing to embrace risk as it was 40-50 years ago. One bad accident, and some believe that lawsuits will all but kill the “personal spaceflight” movement.

The more sarcastic individuals within NASA are quick to point out that SpaceShipOne did not make it to orbit, but “repeated something the X-15 was able to do 40 years ago, and Rutan did it using technology developed by NASA.” Aside from the sour-grapes and elitism in those comments, they are technically correct. Yet work on personal spaceflight continues because there still are people willing to shell out the big bucks ($250,000 for a flight on Virgin Galactic, if and when) to fulfill their dreams of space travel.

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And these are just some of the issues to be addressed in the space business. I haven’t even touched on the Ares vs. EELV or DIRECT/Jupiter 120 debate (nor will I comment publicly on activities where I have a vested employment interest). I know a little more about the government vs. private sector debate, but feel that that’s an argument for another night. In any case, this evening I wanted to focus on technical issues because these are the bigger questions that I do not have enough basis in theory or practice to answer properly. Political questions are another matter.

So, seriously: if there are any technical folks out there who know a reasonably quick way to get smart on the big engineering questions floating around the space business today, I’d be happy to hear it. In the meantime, I can only help the ones who DO know the facts and theories behind their pet projects frame their arguments in better language. The rest, unfortunately, I have to take on faith.